AMPK at the crossroads of circadian clocks and metabolism

被引:115
|
作者
Jordan, Sabine D. [1 ]
Lamia, Katja A. [1 ]
机构
[1] Scripps Res Inst, Dept Chem Physiol, La Jolla, CA 92037 USA
关键词
Circadian; Metabolism; AMPK; ACTIVATED PROTEIN-KINASE; POLY(ADP-RIBOSE) POLYMERASE 1; ACETYL-COA CARBOXYLASE; GLUCOSE-HOMEOSTASIS; PERIPHERAL-TISSUES; SIRT1; MODULATION; GENE-EXPRESSION; PHOSPHORYLATION; ENERGY; CRYPTOCHROME;
D O I
10.1016/j.mce.2012.06.017
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Circadian clocks coordinate behavior and physiology with daily environmental cycles and thereby optimize the timing of metabolic processes such as glucose production and insulin secretion. Such circadian regulation of metabolism provides an adaptive advantage in diverse organisms. Mammalian clocks are primarily based on a transcription and translation feedback loop in which a heterodimeric complex of the transcription factors CLOCK (circadian locomotor output cycles kaput) and BMAL1 (brain and muscle Arnt-like protein 1) activates the expression of its own repressors, the period (PER1-3) and cryptochrome (CRY1 and CRY2) proteins. Posttranslational modification of these core clock components is critical for setting clock time or adjusting the speed of the clock. AMP-activated protein kinase (AMPK) is one of several metabolic sensors that have been reported to transmit energy-dependent signals to the mammalian clock. AMPK does so by driving the phosphorylation and destabilization of CRY and PER proteins. In addition, AMPK subunit composition, sub-cellular localization, and substrate phosphorylation are dependent on clock time. Given the well-established role of AMPK in diverse aspects of metabolic physiology, the reciprocal regulation of AMPK and circadian clocks likely plays an important role in circadian metabolic regulation. (C) 2012 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:163 / 169
页数:7
相关论文
共 50 条
  • [31] Circadian Rhythms, Skeletal Muscle Molecular Clocks, and Exercise
    Schroder, Elizabeth A.
    Esser, Karyn A.
    EXERCISE AND SPORT SCIENCES REVIEWS, 2013, 41 (04): : 224 - 229
  • [32] Circadian Misalignment and Metabolic Disorders: A Story of Twisted Clocks
    Woller, Aurore
    Gonze, Didier
    BIOLOGY-BASEL, 2021, 10 (03):
  • [33] Circadian clocks and memory: time-place learning
    Mulder, C. K.
    Gerkema, M. P.
    Van der Zee, E. A.
    FRONTIERS IN MOLECULAR NEUROSCIENCE, 2013, 6
  • [34] Interactive Features of Proteins Composing Eukaryotic Circadian Clocks
    Crane, Brian R.
    Young, Michael W.
    ANNUAL REVIEW OF BIOCHEMISTRY, VOL 83, 2014, 83 : 191 - 219
  • [35] AMPK-Mediated Regulation of Lipid Metabolism by Phosphorylation
    Wang, Qi
    Liu, Shudong
    Zhai, Aihua
    Zhang, Bai
    Tian, Guizhen
    BIOLOGICAL & PHARMACEUTICAL BULLETIN, 2018, 41 (07) : 985 - 993
  • [36] Central and Peripheral Circadian Clocks in Mammals
    Mohawk, Jennifer A.
    Green, Carla B.
    Takahashi, Joseph S.
    ANNUAL REVIEW OF NEUROSCIENCE, VOL 35, 2012, 35 : 445 - 462
  • [37] Circadian clocks, obesity and cardiometabolic function
    Scott, E. M.
    DIABETES OBESITY & METABOLISM, 2015, 17 : 84 - 89
  • [38] Avian circadian organization: A chorus of clocks
    Cassone, Vincent M.
    FRONTIERS IN NEUROENDOCRINOLOGY, 2014, 35 (01) : 76 - 88
  • [39] Circadian Clocks and Sleep: Impact of Rhythmic Metabolism and Waste Clearance on the Brain
    Albrecht, Urs
    Ripperger, Juergen A.
    TRENDS IN NEUROSCIENCES, 2018, 41 (10) : 677 - 688
  • [40] Interactions between circadian clocks and photosynthesis for the temporal and spatial coordination of metabolism
    Dodd, Antony N.
    Bebin, Fiona E.
    Frank, Alexander
    Webb, Alex A. R.
    FRONTIERS IN PLANT SCIENCE, 2015, 6 : 1 - 7